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低温条件下三维 SIM 和软 X 射线断层摄影数据相关的有效相关的样品制备策略。

Sample preparation strategies for efficient correlation of 3D SIM and soft X-ray tomography data at cryogenic temperatures.

机构信息

Beamline B24, Diamond Light Source, Harwell Science and Innovation Campus, Didcot, UK.

Beamline 09-MISTRAL, ALBA Synchrotron, Barcelona, Spain.

出版信息

Nat Protoc. 2021 Jun;16(6):2851-2885. doi: 10.1038/s41596-021-00522-4. Epub 2021 May 14.

Abstract

3D correlative microscopy methods have revolutionized biomedical research, allowing the acquisition of multidimensional information to gain an in-depth understanding of biological systems. With the advent of relevant cryo-preservation methods, correlative imaging of cryogenically preserved samples has led to nanometer resolution imaging (2-50 nm) under harsh imaging regimes such as electron and soft X-ray tomography. These methods have now been combined with conventional and super-resolution fluorescence imaging at cryogenic temperatures to augment information content from a given sample, resulting in the immediate requirement for protocols that facilitate hassle-free, unambiguous cross-correlation between microscopes. We present here sample preparation strategies and a direct comparison of different working fiducialization regimes that facilitate 3D correlation of cryo-structured illumination microscopy and cryo-soft X-ray tomography. Our protocol has been tested at two synchrotron beamlines (B24 at Diamond Light Source in the UK and BL09 Mistral at ALBA in Spain) and has led to the development of a decision aid that facilitates experimental design with the strategic use of markers based on project requirements. This protocol takes between 1.5 h and 3.5 d to complete, depending on the cell populations used (adherent cells may require several days to grow on sample carriers).

摘要

3D 相关显微镜方法彻底改变了生物医学研究,使人们能够获取多维信息,从而深入了解生物系统。随着相关冷冻保存方法的出现,对冷冻保存样品的相关成像导致在苛刻的成像条件下(如电子和软 X 射线断层扫描)实现纳米分辨率成像(2-50nm)。现在,这些方法已经与传统和超分辨率荧光成像在低温下结合使用,以增加给定样品的信息量,从而立即需要方便、明确的协议来实现显微镜之间的无麻烦的交叉相关。我们在这里介绍了样品制备策略,并对不同的工作基准标记制度进行了直接比较,这些制度有助于冷冻结构照明显微镜和冷冻软 X 射线断层扫描的 3D 相关。我们的方案已经在两个同步加速器光束线(英国钻石光源的 B24 和西班牙 ALBA 的 BL09 Mistral)上进行了测试,并开发了一个决策辅助工具,该工具可以根据项目要求,通过基于标记的策略来方便地进行实验设计。该方案的完成时间取决于所使用的细胞群体,介于 1.5 小时到 3.5 天之间(贴壁细胞可能需要几天时间才能在样品载体上生长)。

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